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Visual Lip-Reading for Quranic Arabic Alphabets and Words Using Deep Learning
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作者 Nada Faisal Aljohani Emad Sami Jaha 《Computer Systems Science & Engineering》 SCIE EI 2023年第9期3037-3058,共22页
The continuing advances in deep learning have paved the way for several challenging ideas.One such idea is visual lip-reading,which has recently drawn many research interests.Lip-reading,often referred to as visual sp... The continuing advances in deep learning have paved the way for several challenging ideas.One such idea is visual lip-reading,which has recently drawn many research interests.Lip-reading,often referred to as visual speech recognition,is the ability to understand and predict spoken speech based solely on lip movements without using sounds.Due to the lack of research studies on visual speech recognition for the Arabic language in general,and its absence in the Quranic research,this research aims to fill this gap.This paper introduces a new publicly available Arabic lip-reading dataset containing 10490 videos captured from multiple viewpoints and comprising data samples at the letter level(i.e.,single letters(single alphabets)and Quranic disjoined letters)and in the word level based on the content and context of the book Al-Qaida Al-Noorania.This research uses visual speech recognition to recognize spoken Arabic letters(Arabic alphabets),Quranic disjoined letters,and Quranic words,mainly phonetic as they are recited in the Holy Quran according to Quranic study aid entitled Al-Qaida Al-Noorania.This study could further validate the correctness of pronunciation and,subsequently,assist people in correctly reciting Quran.Furthermore,a detailed description of the created dataset and its construction methodology is provided.This new dataset is used to train an effective pre-trained deep learning CNN model throughout transfer learning for lip-reading,achieving the accuracies of 83.3%,80.5%,and 77.5%on words,disjoined letters,and single letters,respectively,where an extended analysis of the results is provided.Finally,the experimental outcomes,different research aspects,and dataset collection consistency and challenges are discussed and concluded with several new promising trends for future work. 展开更多
关键词 Visual speech recognition LIP-READING deep learning quranic Arabic dataset tajwid
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简述《古兰经》诵读学的形成、发展与传播
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作者 马占明 《中国穆斯林》 CSSCI 北大核心 2012年第3期19-21,共3页
《古兰经》是伊斯兰教最重要、最根本的神圣经典,是穆斯林的经典。自从被搜集成册以后,《古兰经》对穆斯林的生活产生了深远的影响。历代经师们对《古兰经》的传播做出了重要贡献,他们传承并发展了各种读法,使之成为一门新学科——诵读... 《古兰经》是伊斯兰教最重要、最根本的神圣经典,是穆斯林的经典。自从被搜集成册以后,《古兰经》对穆斯林的生活产生了深远的影响。历代经师们对《古兰经》的传播做出了重要贡献,他们传承并发展了各种读法,使之成为一门新学科——诵读学,并为后世留下了不少扛鼎之作。本文旨在对这一学科在穆斯林世界的形成、发展和传播以及在我国的大概情况做一简单回顾。 展开更多
关键词 《古兰经》 诵读学 发展
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